根际微生物组与根系分泌物协同调控土传病害的研究进展
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1.湖北省农业科学院经济作物研究所;2.华中农业大学园艺林学学院;3.长江大学园林园艺学院

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Research Progress on Synergistic Regulation of Soil-Borne Diseases by Rhizosphere Microbiome and Root Exudates
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1.Institute of Industrial Crops, Hubei Academy of Agricultural Sciences;2.College of Horticulture and Forestry Sciences of Huazhong Agricultural University;3.College of Horticulture and Landscape Architecture, Yangtze University

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    摘要:

    全球人口增长与环境变化背景下,集约化农业连作模式加剧了土传病害频发与连作障碍,传统化学防控难以适配农业绿色可持续发展需求。健康土壤是作物抗病与产能稳定的基础,根际作为“土壤—植物—微生物”互作的核心微域,其微生物组与根系分泌物的双向动态协同调控是植物病害防御的核心内在机制。根系分泌物通过特异性信号分子定向调控根际微生物组功能基因表达,既可驱动有益菌群富集与抗病功能激活,也可能在连作条件下定向富集病原菌形成恶性互作;根际微生物组则通过代谢产物反哺植物根系,优化分泌物组成与分泌节律,二者共同构成“良性互作—恶性互作”的动态平衡网络。土壤质地、pH、有机质含量等理化特性在此过程中发挥关键介导作用,直接影响互作效率与病害防控效果。本文系统综述二者协同抗病的核心路径:根系分泌物通过“浓度/类型依赖性”机制直接抑制病原菌或定向招募有益微生物;根际微生物组通过直接拮抗、营养竞争、免疫激活、自毒物质降解等多重途径抑制病害。在此基础上,总结合成微生物群落构建、农业实践优化、基因编辑与合成生物学等技术创新,分析当前技术田间推广瓶颈,提出未来需构建“土壤类型—代谢物—受体—基因”精准调控网络,建立“短期—中期—长期”三级生态风险评估体系,为破解连作障碍下作物产能保障与生态安全的矛盾提供理论支撑与技术路径。

    Abstract:

    Against the backdrop of global population growth and environmental changes, intensive agriculture under continuous cropping systems has exacerbated the frequent occurrence of soil-borne diseases and continuous cropping obstacles, while traditional chemical control methods are increasingly incompatible with the demands of green and sustainable agricultural development. Healthy soil serves as the foundation for crop disease resistance and stable productivity. As the core microdomain for “soil-plant-microbe” interactions, the rhizosphere relies on the bidirectional dynamic and synergistic regulation between the rhizosphere microbiome and root exudates as the core intrinsic mechanism of soil-borne disease defense. Root exudates directionally regulate the functional gene expression of the rhizosphere microbiome through specific signaling molecules. This can either drive the enrichment of beneficial microbial communities and the activation of disease-resistant functions, or selectively enrich pathogens to form malignant interactions under continuous cropping conditions. In return, the rhizosphere microbiome feeds back to plant roots via metabolites, optimizing the composition and secretion rhythm of root exudates, and together they constitute a dynamic balance network of “beneficial interaction-malignant interaction”. Soil physicochemical properties such as texture, pH, and organic matter content play key mediating roles in this process, directly affecting interaction efficiency and disease control effects. This review systematically summarizes the core pathways of their synergistic disease resistance: root exudates directly inhibit pathogens or directionally recruit beneficial microorganisms through “concentration/type-dependent” mechanisms; the rhizosphere microbiome suppresses diseases through multiple pathways, including direct antagonism, nutrient competition, immune activation, and autotoxin degradation. On this basis, the paper synthesizes technological innovations such as the construction of synthetic microbial communities, optimization of agricultural practices, gene editing, and synthetic biology, and analyzes the current bottlenecks in the field promotion of these technologies. The study proposes that future research should focus on constructing a “soil type-metabolite-receptor-gene” precision regulation network and establishing a “short term-medium term-long term” three-level ecological risk assessment system. This study aims to provide theoretical support and technical pathways for resolving the contradiction between crop productivity guarantee and ecological security under continuous cropping obstacles, while offering references for the synergistic inhibition of other types of plant diseases through rhizosphere microecological regulation.

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吴金平,周洁,白雅帆,匡一迪.根际微生物组与根系分泌物协同调控土传病害的研究进展[J].土壤学报,,[待发表]
wujinping, Zhou Jie, BAI Yafan, KUANG Yidi. Research Progress on Synergistic Regulation of Soil-Borne Diseases by Rhizosphere Microbiome and Root Exudates[J]. Acta Pedologica Sinica,,[In Press]

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  • 收稿日期:2025-10-14
  • 最后修改日期:2026-02-03
  • 录用日期:2026-03-27
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